Department of Biological, Geological, and Environmental Sciences, University of Bologna, Bologna 40126, Italy.
Philos Trans R Soc Lond B Biol Sci. 2020 Jan 20;375(1790):20190169. doi: 10.1098/rstb.2019.0169. Epub 2019 Dec 2.
Finding causal links between genotype and phenotype is a major issue in biology, even more in mitochondrial biology. First of all, mitochondria form complex networks, undergoing fission and fusion and we do not know how such dynamics influence the distribution of mtDNA variants across the mitochondrial network and how they affect the phenotype. Second, the non-Mendelian inheritance of mitochondrial genes can have sex-specific effects and the mechanism of mitochondrial inheritance is still poorly understood, so it is not clear how selection and/or drift act on mtDNA genetic variation in each generation. Third, we still do not know how mtDNA expression is regulated; there is growing evidence for a convoluted mechanism that includes RNA editing, mRNA stability/turnover, post-transcriptional and post-translational modifications. Fourth, mitochondrial activity differs across species as a result of several interacting processes such as drift, adaptation, genotype-by-environment interactions, mitonuclear coevolution and epistasis. This issue will cover several aspects of mitochondrial biology along the path from genotype to phenotype, and it is subdivided into four sections focusing on mitochondrial genetic variation, on the relationship among mitochondria, germ line and sex, on the role of mitochondria in adaptation and phenotypic plasticity, and on some future perspectives in mitochondrial research. This article is part of the theme issue 'Linking the mitochondrial genotype to phenotype: a complex endeavour'.
在生物学中,甚至在粒体生物学中,发现基因型和表型之间的因果关系是一个主要问题。首先,线粒体形成复杂的网络,经历裂变和融合,我们不知道这种动力学如何影响 mtDNA 变体在粒体网络中的分布,以及它们如何影响表型。其次,线粒体基因的非孟德尔遗传可能具有性别特异性效应,线粒体遗传的机制仍知之甚少,因此尚不清楚选择和/或漂变如何在每一代中对 mtDNA 遗传变异起作用。第三,我们仍然不知道 mtDNA 表达是如何调控的;有越来越多的证据表明存在一种复杂的机制,包括 RNA 编辑、mRNA 稳定性/周转率、转录后和翻译后修饰。第四,由于漂移、适应、基因型-环境相互作用、线粒体与核的共同进化和上位性等几个相互作用的过程,线粒体的活性在不同物种之间存在差异。本议题将沿着从基因型到表型的途径涵盖线粒体生物学的几个方面,并分为四个部分,重点关注线粒体遗传变异、线粒体与生殖系和性别之间的关系、线粒体在适应和表型可塑性中的作用,以及线粒体研究的一些未来展望。本文是主题为“将线粒体基因型与表型联系起来:一项复杂的工作”的专刊的一部分。